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Updated: Sep 19, 2026

Translating Extracellular Electron Transfer Activities with Organic Electrochemical Transistors
Published on: January 31, 2025
Electrical signalling beyond diffusion-limited microbial interactions
Paulo R F Rocha1, Leïla Tirichine2,3
1Bioelectronics and Bioenergy Research Lab, Centre for Functional Ecology-Science for People & the Planet, Associate Laboratory TERRA, Department of Life Sciences, University of Coimbra, Coimbra 3000-456, Portugal.
Abstract:
Ecological communication is traditionally interpreted through diffusion-limited chemical signalling. Here, we argue that bioelectricity provides a complementary dimension of microbial ecological interaction, arising from ion-driven electrical signalling between responsive cells and extracellular electron transport through redox-active or conductive pathways. These mechanisms operate over distinct physical regimes, with ion-driven signalling mediating information-bearing interactions when electrical or electrochemical perturbations are sensed and decoded by biological recipients, whereas extracellular electron transport enables metabolic and redox coupling. We define "handover distance" as the effective functional interaction range over which a biologically generated electrical or electrochemical perturbation can elicit a measurable response in a biological recipient. In analogy to the phycosphere, which describes the diffusionlimited chemical interaction radius surrounding microorganisms, handover distance provides an experimentally testable means of linking cellular electrophysiology to the spatial range of biological interactions. This Perspective proposes that bioelectrical interactions represent an underappreciated dimension of microbial ecology that complements established chemical communication across complex environments.
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